US8048403B2

UZM-26 family of crystalline aluminosilicate compositions and method of preparing the compositions

Summary by NHIP

UZM-26 aluminosilicate compositions

The invention provides layered crystalline aluminosilicate compositions with an empirical formula containing exchangeable cations and organoammonium species. Distinctive elements include mole ratios of M and R ranging from 0.05 to 10.0 and 0.5 to 10.0, respectively, alongside specific gallium, iron, or boron substitutions and defined X-ray diffraction d-spacings.

Claim Score by NHIP

Read claim 1, the broadest

Abstract

This invention relates to a new family of crystalline aluminosilicate compositions designated the UZM-26 family. These include the species UZM-26P, UZM-26PX, UZM-26 and UZM-26X, which have unique structures. UZM-26P is an as synthesized layered composition, while UZM-26 is a calcined form of UZM-26P which has a three-dimensional structure. UZM-26PX is an ion-exchanged form of UZM-26P while UZM-26X is a calcined form of UZM-26PX which has a three-dimensional structure.

US8048403B2, drawing sheet 1
Sheet 1 of 6

Term

3.6 yearsleft in the term

Expires 27 April 2030, including 497 days of term adjustment.

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21 claims: 5 independent, 16 dependent

  1. 1
    Broadest claimClaim Score 13, narrow(NHIP)A layered crystalline composition having an empirical composition in the as-synthesized form and on an anhydrous basis expressed by an empirical formula of:M m n+ R r p+ Al 1-x E x Si y O z where M is at least one exchangeable cation selected from the group consisting of alkali metal ions, alkaline earth metal ions, and rare earth metal ions, “m” is the mole ratio of M to (Al+E) and varies from about 0.05 to about 10.0, R is an organoammonium cation or amine selected from the group of hexyltrimethylammonium (HTMA + ), hexamethonium, pentyltrimethylammonium, choline, ethyltrimethylammonium (ETMA + ), diethyldimethyl ammonium (DEDMA + ), trimethylpropylammonium, trimethylbutylammonium, dimethyldiethanolammonium, tetraethyl ammonium (TEA + ), tetrapropylammonium (TPA + ), dimethylhexylamine, diethanolamine, and mixtures thereof, “r” is the mole ratio of R to (Al+E) and has a value of about 0.5 to about 10.0, “n” is the weighted average valence of M and has a value of about 1 to about 3, “p” is the weighted average valence of R and has a value of about 1 to about 2, E is an element selected from the group consisting of gallium, iron, boron and mixtures thereof, “x” is the mole fraction of E and has a value from 0 to about 1.0, “y” is the mole ratio of Si to (Al+E) and varies from greater than 5 to about 40 and “z” is the mole ratio of O to (Al+E) and has a value determined by the equation: z =( m·n+p·r+ 3+4· y )/2 and is characterized in that it has the x-ray diffraction pattern having at least the d-spacings and intensities set forth in Table A: TABLE A 2θ d (Å) I/Io % 5.32-5.88 16.60-15.02 m-vs 8.10-8.94 10.91-9.89  w-m 12.40-12.75 7.13-6.94 w-m 13.15-13.65 6.73-6.48 m 21.10-21.55 4.21-4.12 m 22.00-22.40 4.04-3.97 m 23.55-23.88 3.78-3.72 w-m 24.95-25.31 3.57-3.52 m-vs 25.47-25.88 3.49-3.44 m 28.06-28.44 3.18-3.14 w-m 49.78-50.28 1.83-1.81 m.
  2. 6
    A process for preparing a layered crystalline composition having an empirical composition in the as-synthesized form and on an anhydrous basis expressed by an empirical formula of:M m n+ R r p+ Al 1-x E x Si y O z where M is at least one exchangeable cation selected from the group consisting of alkali metal ions, alkaline earth metal ions, and rare earth metal ions, “m” is the mole ratio of M to (Al+E) and varies from about 0.05 to about 10.0, R is an organoammonium cation or an amine selected from the group of hexyltrimethylammonium (HTMA + ), hexamethonium, pentyltrimethylammonium, choline, ethyltrimethylammonium (ETMA + ), diethyldimethyl ammonium (DEDMA + ), trimethylpropylammonium, trimethylbutylammonium, dimethyldiethanolammonium, tetraethyl ammonium (TEA + ), tetrapropylammonium (TPA + ), dimethylhexylamine, diethanolamine, and mixtures thereof, “r” is the mole ratio of R to (Al+E) and has a value of about 0.5 to about 10.0, “n” is the weighted average valence of M and has a value of about 1 to about 3, “p” is the weighted average valence of R and has a value of about 1 to about 2, E is an element selected from the group consisting of gallium, iron, boron and mixtures thereof, “x” is the mole fraction of E and has a value from 0 to about 1.0, “y” is the mole ratio of Si to (Al+E) and varies from greater than 5 to about 40 and “z” is the mole ratio of O to (Al+E) and has a value determined by the equation: z =( m·n+p·r+ 3+4· y )/2 and is characterized in that it has the x-ray diffraction pattern having at least the d-spacings and intensities set forth in Table A: TABLE A 2θ d (Å) I/Io % 5.32-5.88 16.60-15.02 m-vs 8.10-8.94 10.91-9.89  w-m 12.40-12.75 7.13-6.94 w-m 13.15-13.65 6.73-6.48 m 21.10-21.55 4.21-4.12 m 22.00-22.40 4.04-3.97 m 23.55-23.88 3.78-3.72 w-m 24.95-25.31 3.57-3.52 m-vs 25.47-25.88 3.49-3.44 m 28.06-28.44 3.18-3.14 w-m 49.78-50.28 1.83-1.81 m the process comprising forming a reaction mixture containing reactive sources of M, R, Si and at least one of Al and E and heating the reaction mixture at a temperature of about 60° C. to about 175° C., for a time sufficient to form the composition, the reaction mixture having a composition expressed in terms of mole ratios of the oxides of: a M 2/n O: b R 2/p O:1- c Al 2 O 3 :c E 2 O 3 :d SiO 2 :e H 2 O where “a” has a value of about 0.05 to about 10.0, “b” has a value of about 2.5 to about 120, “c” has a value of 0 to about 1.0, “d” has a value of about 10 to about 150, “e” has a value of about 25 to about 6000.
  3. 15
    A crystalline microporous composition having a three-dimensional framework composed of at least tetrahedral SiO 2 units and an empirical composition on an anhydrous basis expressed by the empirical formula of:M m n+ Al 1-x E x Si y O z where M is at least one exchangeable cation selected from the group consisting of hydrogen ion, alkali, alkaline earth, and rare earth metals, “m” is the mole ratio of M to (Al+E) and varies from 0.05 to about 10.0, “n” is the weighted average valence of M and has a value of about 1 to about 3, E is an element selected from the group consisting of gallium, iron, boron and mixtures thereof, “x” is the mole fraction of E and has a value from 0 to about 1.0, “y” is the mole ratio of Si to (Al+E) and varies from greater than 5 to about 40 and “z” is the mole ratio of O to (Al+E) and has a value determined by the equation: z =( m·n+ 3+4 ·y )/2 and is characterized in that it has the x-ray diffraction pattern having at least the d-spacings and intensities set forth in Table B: TABLE B 2θ d (Å) I/Io % 7.45-7.72 11.86-11.44 m-s 9.35-9.53 9.45-9.27 m-s 12.30-13.00 7.19-6.80 m-s 13.25-13.73 6.68-6.44 m-s 15.20-15.80 5.82-5.60 w-m 21.06-21.62 4.22-4.11 m 22.16-22.62 4.01-3.93 m-vs 23.73-24.06 3.75-3.70 m 25.15-25.44 3.54-3.50 vs 25.51-25.95 3.49-3.43 m-vs 28.40-28.57 3.14-3.12 m 30.55-31.15 2.92-2.87 m 49.70-50.40 1.83-1.81 w-m.
  4. 17
    A crystalline layered composition having an empirical composition on an anhydrous basis expressed by an empirical formula of:M′ m n+ R r p+ Al 1-x E x Si y O z where M′ is at least one exchangeable cation selected from the group consisting of hydrogen ion, ammonium ion, alkali ion, alkaline earth ion, transition metal ion and rare earth metal ion, “m” is the mole ratio of M′ to (Al+E) and varies from 0.01 to about 10.0, R is an organoammonium cation or an amine selected from the group consisting of hexyltrimethylammonium (HTMA + ), hexamethonium, pentyltrimethylammonium, choline, ethyltrimethylammonium (ETMA + ), diethyldimethylammonium (DEDMA + ), trimethylpropylammonium, trimethylbutylammonium, dimethyldiethanolammonium, tetraethylammonium (TEA + ), tetrapropylammonium (TPA + ), dimethylhexylamine, diethanolamine and mixtures thereof, “r” is the mole ratio of R to (Al+E) and has a value of about 0.01 to about 10.0, “n” is the weighted average valence of M and has a value of about 1 to about 3, “p” is the weighted average valence of R and has a value of about 1 to about 2, E is an element selected from the group consisting of gallium, iron, boron and mixtures thereof, “x” is the mole fraction of E and has a value from 0 to about 1.0, “y” is the mole ratio of Si to (Al+E) and varies from greater than 5 to about 40 and “z” is the mole ratio of O to (Al+E) and has a value determined by the equation: z =( m·n+p·r+ 3+4 ·y )/2 and is characterized in that it has the x-ray diffraction pattern having at least the d-spacings and intensities set forth in Table C: TABLE C 2θ d (Å) I/Io % 8.27-9.13 10.68-9.68  m 12.45-12.82 7.10-6.90 m 13.33-13.61 6.64-6.50 m 22.21-22.48 4.00-3.95 m 23.74-24.05 3.74-3.70 m 24.33-24.58 3.66-3.62 m 25.20-25.42 3.53-3.50 vs 28.22-28.75 3.16-3.10 w-m 48.62-48.97 1.87-1.86 w-m 65.15-65.90 1.43-1.42 w.
  5. 20
    A crystalline microporous zeolitic composition having a three-dimensional framework composed of at least tetrahedral SiO 2 units and an empirical composition on an anhydrous basis expressed by the empirical formula of:M1 m n+ Al 1-x E x Si y O z where M1 is at least one exchangeable cation selected from the group consisting of protons, alkali, alkaline earth, transition metals, and rare earth metals, “m” is the mole ratio of M1 to (Al+E) and varies from 0.05 to about 10.0, “n” is the weighted average valence of M1 and has a value of about 1 to about 3, E is an element selected from the group consisting of gallium, iron, boron and mixtures thereof, “x” is the mole fraction of E and has a value from 0 to about 1.0, “y” is the mole ratio of Si to (Al+E) and varies from greater than 5 to about 40 and “z” is the mole ratio of O to (Al+E) and has a value determined by the equation: z =( m·n+ 3+4 ·y )/2 and is characterized in that it has an x-ray diffraction pattern having at least the d-spacings and intensities set forth in Table D: TABLE D 2θ d (Å) I/Io % 9.20-9.70 9.60-9.11 m 12.45-12.85 7.10-6.88 m-vs 13.40-13.65 6.60-6.48 m-s 14.10-14.40 6.28-6.15 w-m 22.40-22.65 3.97-3.92 m-vs 23.85-24.10 3.73-3.69 w-m 25.22-25.45 3.53-3.50 vs 25.89-26.10 3.44-3.41 m.